A novel battery thermal management system utilizing ultrathin thermal ground planes for prismatic Lithium-ion batteries

被引:5
作者
Jiang, Ziqi [1 ]
Yang, Yinchuang [1 ]
Qiu, Huihe [1 ,2 ]
机构
[1] Hong Kong Univ Sci & Technol, Dept Mech & Aerosp Engn, Hong Kong, Peoples R China
[2] Hong Kong Univ Sci & Technol, Thrust Sustainable Energy & Environm, Guangzhou, Peoples R China
关键词
Battery thermal management; Thermal ground plane; Lithium iron phosphate battery; Fast charge; HEAT PIPES; RESISTANCES; MECHANISMS; ISSUES;
D O I
10.1016/j.applthermaleng.2023.120869
中图分类号
O414.1 [热力学];
学科分类号
摘要
Temperature significantly affects the energy efficiency, safety, life and performance of a lithium-ion battery pack in electric vehicles (EVs). High overall temperature and large temperature difference of the battery in fast charging (FC) can cause degradation in performance and even catastrophic failure like a thermal runaway. Besides, the increasing energy density of battery packs limits the space for the thermal management system. Therefore, we developed an ultrathin thermal ground plane-based battery thermal management system (UTTGPBTMS), which utilizes 0.4 mm thick novel UTTGP with air cooling to dissipate the heat from the gap between batteries. Double-layer high pores per inch (PPI) mesh and wettability modification was adopted to enhance the thermal performance of the UTTGP. Before the evaluation test of the BTMS, the heat generation rates of the batteries in 2.2C to 4C fasting charging conditions are estimated by Bernardi's model. Then, the thermal performance of the novel battery thermal management system (BTMS) is experimentally investigated under 2.2C to 4C FC regimes at ambient temperatures from 10 & DEG;C to 50 & DEG;C. The BTMS is able to maintain a battery surface temperature of 55Ah Lithium iron phosphate (LiFeO4, LFP) batteries below 42.7 & DEG;C under a 4C charge rate, 57.3 & DEG;C at 50 & DEG;C ambient temperature, respectively, and still achieve good surface temperature uniformity in all cases studied. Compared to a BTMS with copper heat spreaders, the temperature rise temperature nonuniformity, and thermal resistance are reduced by up to 23.3%, 28.4%, and 62.6%, respectively. Besides this, the effects of the pores density of the mesh in the UTTGP-BTMS are also studied by changing the sieve number of mesh, showing that a higher pore density gives better performance under large C-rates. The proposed UTTGPBTMS showed significant performance with only submillimeter thickness in the thermoregulation of a battery pack, with the potential of being a viable solution for high-power battery thermal management in EVs.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] [Anonymous], 2022, 1234 FOTW
  • [2] A GENERAL ENERGY-BALANCE FOR BATTERY SYSTEMS
    BERNARDI, D
    PAWLIKOWSKI, E
    NEWMAN, J
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1985, 132 (01) : 5 - 12
  • [3] Global warming and renewable energy sources for sustainable development: A case study in Turkey
    Bilgen, Selcuk
    Keles, Sedat
    Kaygusuz, Abdullah
    Sari, Ahmet
    Kaygusuz, Kamil
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2008, 12 (02) : 372 - 396
  • [4] Thermal and mechanical aspects of the response of embedded retaining walls used as shallow geothermal heat exchangers
    Bourne-Webb, P. J.
    Bodas Freitas, T. M.
    da Costa Goncalves, R. A.
    [J]. ENERGY AND BUILDINGS, 2016, 125 : 130 - 141
  • [5] Mass Maldistribution Research of Different Internal Flowing Channels in the Cooling Plate Applied to Electric Vehicle Batteries
    Cai, Huikun
    Xu, Chen
    Liao, Yidai
    Su, Lijun
    Weng, Zeju
    [J]. APPLIED SCIENCES-BASEL, 2019, 9 (04):
  • [6] Comparison of different cooling methods for lithium ion battery cells
    Chen, Dafen
    Jiang, Jiuchun
    Kim, Gi-Heon
    Yang, Chuanbo
    Pesaran, Ahmad
    [J]. APPLIED THERMAL ENGINEERING, 2016, 94 : 846 - 854
  • [7] Titanium-Based Anode Materials for Safe Lithium-Ion Batteries
    Chen, Zonghai
    Belharouak, Ilias
    Sun, Y-K
    Amine, Khalil
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2013, 23 (08) : 959 - 969
  • [8] Dynamic thermal behavior of micro heat pipe array-air cooling battery thermal management system based on thermal network model
    Dan, Dan
    Yao, Chengning
    Zhang, Yangjun
    Zhang, Hu
    Zeng, Zezhi
    Xu, Xiaoming
    [J]. APPLIED THERMAL ENGINEERING, 2019, 162
  • [9] Heat Pipe Thermal Management Based on High-Rate Discharge and Pulse Cycle Tests for Lithium-Ion Batteries
    Deng, Shasha
    Li, Kuining
    Xie, Yi
    Wu, Cunxue
    Wang, Pingzhong
    Yu, Miao
    Li, Bo
    Zheng, Jintao
    [J]. ENERGIES, 2019, 12 (16)
  • [10] Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database
    Feng, Xuning
    Zheng, Siqi
    Ren, Dongsheng
    He, Xiangming
    Wang, Li
    Cui, Hao
    Liu, Xiang
    Jin, Changyong
    Zhang, Fangshu
    Xu, Chengshan
    Hsu, Hungjen
    Gao, Shang
    Chen, Tianyu
    Li, Yalun
    Wang, Tianze
    Wang, Hao
    Li, Maogang
    Ouyang, Minggao
    [J]. APPLIED ENERGY, 2019, 246 : 53 - 64